Assessing Time to Reporting and Clinical Management of Patients With Severe Bacterial and Fungal Infections Between Two Diagnostic Approaches: Matrix-assisted Laser Desorption Ionization-time of Flight Mass Spectrometry Versus Routine Clinical Microbiology for Identifying Pathogens; a Randomized Diagnostic Trial
试验速览
- 阶段
- 不适用
- 状态
- 已完成
- 入组人数
- 802
- 试验地点
- 2
- 主要终点
- Proportion of patients on optimal antibiotic treatment
研究概览
简要总结
MALDI-TOF MS is capable of directly identifying bacteria and fungi in positive blood cultures, which may be beneficial to patient management. Therefore, MALDI-TOF MS is an important new technology that is becoming routine in developed countries. It is currently unknown whether MALDITOF MS improves diagnostics, costs and patient outcomes in developing countries. This study will assess the clinical impact of a MALDITOF MS system (Maldi Biotyper, Bruker, Germany) in the resource constrained setting of Vietnam and at what cost.
详细描述
When an eligible specimen from a patient shows pathogen growth, the pathogen identification will be randomized to either MaldiTof or routine diagnostics ('diagnostic pipelines'). Randomization to MaldiTof or routine diagnostics will be 1:1 with stratification by hospital and specimen type (blood vs. other). Isolates grown from all eligible specimens of the same patient will be assigned to the same diagnostic pipeline as the first randomized specimen of that patient.
Allocation to diagnostic arm will be assigned by a web based randomization program. When a pathogen is isolated from a positive eligible specimen, the laboratory technician will log onto the secure randomization program and enter the patient and specimen code. The random diagnostic pipeline allocation will then be generated, informed to the laboratory technician and logged in the study database. In the case of multiple specimens with pathogen growth for a single patient, the unique patient code will trigger the randomization program to generate the same diagnostic arm allocation as the previous sample(s).
研究设计
- 研究类型
- Interventional
- 分配方式
- Randomized
- 干预模型
- Parallel
- 主要目的
- Diagnostic
- 盲法
- Single (Outcomes Assessor)
入排标准
- 性别
- All
- 接受健康志愿者
- 否
入选标准
- •Pathogen isolates from the following specimens: blood or diagnostic aspirates from normally sterile sites (including cerebrospinal fluid (CSF), deep abscesses, joint fluid, peritoneal fluid, and pleural fluid, deep tissue biopsies).
排除标准
- •Specimens negative for all pathogens
- •Specimens from sputum, respiratory or non-surgical wound swabs, nails, mucosal or skin biopsies, urine, fluid from drains, skin swabs and any others not listed in the inclusion criteria.
结局指标
主要结局
Proportion of patients on optimal antibiotic treatment
时间窗: Within 24 hours of positive culture (first growth of an eligible specimen).
Optimal antibiotic treatment is defined as an antibiotic treatment for at least 48 hours since positive culture, targeted to the identified pathogen and later found to cover the organisms antimicrobial resistance profile, while avoiding unnecessary broad spectrum antibiotics (e.g. avoid carbapenems or multiple agents where other agents or single agents would provide sufficient coverage). This study aims to determine The proportion of patients on optimal antibiotic treatment within 24 hours of positive culture (first growth of an eligible specimen).
次要结局
- Length of hospital stay(During hospital admission, estimated to be 12 days)
- The total duration of antibiotic treatment(During treatment course, estimated to be 7-10 days.)
- The total number of antibiotic switches(During treatment course, estimated to be 7-10 days.)
- Patient outcome: death, palliative discharge, survived with sequelae, recovered(On or before discharge, estimated to be at 12 days)
- Length of ICU stay(During ICU admission, estimated to be 7 days)
- Costs of microbiological testing(On or before discharge, estimated to be at 12 days)
- Treatment and hospital costs(On or before discharge, estimated to be at 12 days)
